LMV321-Q1 TI1 | Alldatasheet
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LMV321-Q1 SINGLE, LMV358-Q1 DUAL, LMV324-Q1 QUAD LOW-VOLTAGE RAIL-TO-RAIL OUTPUT OPERATIONAL AMPLIFIERS SLOS415E − JUNE 2003 − REVISED APRIL 2008 1POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 POST OFFICE BOX 1443 • HOUSTON, TEXAS 77251−1443 /C0068Qualified for Automotive Applications /C00682.7-V and 5-V Performance /C0068No Crossover Distortion /C0068Low Supply Current: LMV321 . . . 130 µA Typ LMV358 . . . 210 µA Typ LMV324 . . . 410 µA Typ /C0068Rail-to-Rail Output Swing description/ordering information The LMV321, LMV358, and LMV324 are single, dual, and quad low-voltage (2.7 V to 5.5 V) operational amplifiers with rail-to-rail output swing. The LMV321, LMV358, and LMV324 are the most cost-effective solution for applications where low-voltage operation, space saving, and low price are required. These amplifiers were designed specifically for low-voltage (2.7 V to 5 V) operation, with performance specifications meeting or exceeding the LM358 and LM324 devices that operate from 5 V to 30 V. Additional features of the LMV3xx devices are a common-mode input voltage range that includes ground, 1-MHz unity-gain bandwidth, and 1-V/µs slew rate. Please be aware that an important notice concerning avail ability, standard warranty, and use in critical applications of Texas Instruments semiconductor products and disclaimers thereto appears at the end of this data sheet. Copyright 2008, Texas Instruments IncorporatedPRODUCTION DATA information is current as of publication date. Products conform to specifications per the terms of Texas Instruments standard warranty. Production processing does not necessarily include testing of all parameters. 1OUT 1IN− 1IN+ VCC+ 2IN+ 2IN− 2OUT 4OUT 4IN− 4IN+ GND 3IN+ 3IN− 3OUT LMV324 ...D O R P W PACKAGE (TOP VIEW) LMV358 ...D O R P W PACKAGE (TOP VIEW) 1OUT 1IN− 1IN+ GND VCC+ 2OUT 2IN− 2IN+ LMV321 . . . DBV PACKAGE (TOP VIEW) VCC+ OUT 1IN+ GND IN−
LMV321-Q1 SINGLE, LMV358-Q1 DUAL, LMV324-Q1 QUAD LOW-VOLTAGE RAIL-TO-RAIL OUTPUT OPERATIONAL AMPLIFIERS SLOS415E − JUNE 2003 − REVISED APRIL 2008
2 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
POST OFFICE BOX 1443 • HOUSTON, TEXAS 77251−1443 ORDERING INFORMATION/C0123 TA PACKAGE† ORDERABLE PART NUMBER TOP-SIDE MARKING −40°C to 85°C Single SOT23-5 (DBV) Reel of 3000 LMV321IDBVRQ1 RC1B SOIC (D) Tube of 75 LMV358IDQ1 358IQ1 −40°C to 85°C Dual SOIC (D) Reel of 2500 LMV358IDRQ1 358IQ1
40 C to 85 C Dual
TSSOP (PW) Reel of 2000 LMV358IPWRQ1 358IQ1 SOIC (D) Tube of 50 LMV324IDQ1 LMV324IQ1−40°C to 85°C Quad SOIC (D) Reel of 2500 LMV324IDRQ1 LMV324IQ1Q TSSOP (PW) Reel of 2000 LMV324IPWRQ1 V324IQ1 −40°C to 125°C Single SOT23-5 (DBV) Reel of 3000 LMV321QDBVRQ1 RCCB SOIC (D) Tube of 75 LMV358QDQ1 V358Q1 −40°C to 125°C Dual SOIC (D) Reel of 2500 LMV358QDRQ1 V358Q1
40 C to 125 C Dual
TSSOP (PW) Reel of 2000 LMV358QPWRQ1 V358Q1 SOIC (D) Tube of 50 LMV324QDQ1 LMV324Q1−40°C to 125°C Quad SOIC (D) Reel of 2500 LMV324QDRQ1 LMV324Q1Q TSSOP (PW) Reel of 2000 LMV324QPWRQ1 MV324Q1 † For the most current package and ordering information, see the Package Option Addendum at the end of this document, or see the TI web site at http://www.ti.com. ‡ Package drawings, thermal data, and symbolization are available at http://www.ti.com/packaging. symbol (each amplifier) −IN− IN+ OUT
LMV321-Q1 SINGLE, LMV358-Q1 DUAL, LMV324-Q1 QUAD LOW-VOLTAGE RAIL-TO-RAIL OUTPUT OPERATIONAL AMPLIFIERS SLOS415E − JUNE 2003 − REVISED APRIL 2008 3POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 POST OFFICE BOX 1443 • HOUSTON, TEXAS 77251−1443 LMV324 simplified schematic VBIAS4 IN+ IN− VBIAS1 VBIAS2 VBIAS3 Output VCC VCCVCC VCC absolute maximum ratings over operating free-air temperature range (unless otherwise noted)† Duration of output short circuit (one amplifier) to ground at (or below) TA = 25°C, † Stresses beyond those listed under “absolute maximum ratings” may cause permanent damage to the device. These are stress ratings only, and functional operation of the device at these or any other conditions beyond those indicated under “recommended operating conditi ons” is not implied. Exposure to absolute-maximum-rated conditions for extended periods may affect device reliability. NOTES: 1. All voltage values (except differential voltages and VCC specified for the measurement of IOS) are with respect to the network GND. 2. Differential voltages are at IN+ with respect to IN−. 3. Short circuits from outputs to V CC can cause excessive heating and eventual destruction. 4. Maximum power dissipation is a function of T J(max), /C0113JA, and TA. The maximum allowable power dissipation at any allowable ambient temperature is PD = (TJ(max) − TA)//C0113JA. Selecting the maximum of 150°C can affect reliability. 5. The package thermal impedance is calculated in accordance with JESD 51-7.
LMV321-Q1 SINGLE, LMV358-Q1 DUAL, LMV324-Q1 QUAD LOW-VOLTAGE RAIL-TO-RAIL OUTPUT OPERATIONAL AMPLIFIERS SLOS415E − JUNE 2003 − REVISED APRIL 2008
4 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
POST OFFICE BOX 1443 • HOUSTON, TEXAS 77251−1443 recommended operating conditions (see Note 6) MIN MAX UNIT VCC Supply voltage (single-supply operation) 2.7 5.5 V V Amplifier t rn on oltage le el VCC = 2.7 V 1.7 VVIH Amplifier turn-on voltage level VCC = 5 V 3.5 V V Amplifier turn off voltage level VCC = 2.7 V 0.7 VVIL Amplifier turn-off voltage level VCC = 5 V 1.5 V T Operating free air temperature I suffix −40 85 °CTA Operating free-air temperature Q suffix −40 125 °C NOTE 6: All unused control inputs of the device must be held at VCC or GND to ensure proper device operation. Refer to the TI application report, Implications of Slow or Floating CMOS Inputs, literature number SCBA004. electrical characteristics at TA = 25°C, VCC+ = 2.7 V (unless otherwise noted) PARAMETER TEST CONDITIONS MIN TYP MAX UNIT VIO Input offset voltage 1.7 7 mV /C0097VIO Average temperature coefficient of input offset voltage 5 /C0109V/°C IIB Input bias current 11 250 nA IIO Input offset current 5 50 nA CMRR Common-mode rejection ratio VCM = 0 to 1.7 V 50 63 dB kSVR Supply-voltage rejection ratio VCC = 2.7 V to 5 V, VO = 1 V 50 60 dB VICR Common-mode input voltage range CMRR /C0119 50 dB 0 to 1.7 −0.2 to 1.9 V Output swing R 10 kΩ t o13 5V High level VCC − 100 VCC − 10 mVOutput swing R L = 10 kΩ to 1.35 V Low level 60 180 mV LMV321 80 170 ICC Supply current LMV358 (both amplifiers) 140 340 /C0109ACC pp y LMV324 (all four amplifiers) 260 680 /C0109 B1 Unity-gain bandwidth CL = 200 pF 1 MHz /C0102m Phase margin 60 deg Gm Gain margin 10 dB Vn Equivalent input noise voltage f = 1 kHz 46 nV/√Hz In Equivalent input noise current f = 1 kHz 0.17 pA/√Hz
LMV321-Q1 SINGLE, LMV358-Q1 DUAL, LMV324-Q1 QUAD LOW-VOLTAGE RAIL-TO-RAIL OUTPUT OPERATIONAL AMPLIFIERS SLOS415E − JUNE 2003 − REVISED APRIL 2008 5POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 POST OFFICE BOX 1443 • HOUSTON, TEXAS 77251−1443 electrical characteristics at specified free-air temperature range, V CC+ = 5 V (unless otherwise noted) PARAMETER TEST CONDITIONS TA† MIN TYP MAX UNIT V Input offset voltage 25°C 1.7 7 mVVIO Input offset voltage Full range 9 mV /C0097VIO Average temperature coefficient of input offset voltage 25°C 5 /C0109V/°C I Input bias current 25°C 15 250 nAIIB Input bias current Full range 500 nA I Input offset current 25°C 5 50 nAIIO Input offset current Full range 150 nA CMRR Common-mode rejection ratio VCM = 0 to 4 V 25°C 50 65 dB kSVR Supply-voltage rejection ratio VCC = 2.7 V to 5 V, VO = 1 V, VCM = 1 V 25°C 50 60 dB V Common-mode CMMR /C011950 dB 25°C 0t o4 02t o42 VVICR Common mode input voltage range CMMR /C0119 50 dB 25°C 0 to 4 −0.2 to 4.2 V High 25°C VCC − 300 VCC − 40 R 2k Ω t o25V High level Full range VCC − 400 RL = 2 kΩ to 2.5 V Low 25°C 120 300 Output swing Low level Full range 400 mVOutput swing High 25°C VCC − 100 VCC − 10 mV R 10 kΩ t o25V High level Full range VCC − 200 RL = 10 kΩ to 2.5 V Low 25°C 65 180Low level Full range 280 A Large-signal differential R 2k Ω 25°C 15 100 V/mVAVD Large signal differential voltage gain RL = 2 kΩ Full range 10 V/mV I Output short circuit current Sourcing, VO = 0 V 25°C 5 60 mAIOS Output short-circuit current Sinking, VO = 5 V 25°C 10 160 mA LMV321 25°C 130 250 LMV321 Full range 350 I Supply current LMV358 (both amplifiers) 25°C 210 440 AICC Supply current LMV358 (both amplifiers) Full range 615 /C0109A LMV324 (all four amplifiers) 25°C 410 830 LMV324 (all four amplifiers) Full range 1160 B1 Unity-gain bandwidth CL = 200 pF 25°C 1 MHz /C0102m Phase margin 25°C 60 deg Gm Gain margin 25°C 10 dB Vn Equivalent input noise voltage f = 1 kHz 25°C 39 nV/√Hz In Equivalent input noise current f = 1 kHz 25°C 0.21 pA/√Hz SR Slew rate 25°C 1 V//C0109s † Full range is −40°C to 85°C for I-level part, −40°C to 125°C for Q-level part.
LMV321-Q1 SINGLE, LMV358-Q1 DUAL, LMV324-Q1 QUAD LOW-VOLTAGE RAIL-TO-RAIL OUTPUT OPERATIONAL AMPLIFIERS SLOS415E − JUNE 2003 − REVISED APRIL 2008
6 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
POST OFFICE BOX 1443 • HOUSTON, TEXAS 77251−1443 TYPICAL CHARACTERISTICS 10000 −50 Figure 1 −20 −10 1 10 100 1000 100 150 200 Gain − dB Phase Margin − Deg GAIN AND PHASE MARGIN vs FREQUENCY Frequency − kHz VCC = 2.7 V RL = 100 kΩ, 2 kΩ, 600 Ω Gain Phase 100 kΩ 2 kΩ 600 Ω Phase Margin − Deg GAIN AND PHASE MARGIN vs FREQUENCY Figure 2 −20 −10 1 10 100 1000 10000 −50 Gain − dB Frequency − kHz 100 150 200 VCC = 5 V RL = 100 kΩ, 2 kΩ, 600 Ω Gain Phase 100 kΩ 2 kΩ 600 Ω GAIN AND PHASE MARGIN vs FREQUENCY −20 −10 10 100 1000 10000 −80 −60 −40 −20 100 Figure 3 VCC = 5 V RL = 600 /C0087 CL = 16 pF, 100 pF, 500 pF, 1000 pF Gain − dB Frequency − kHz Phase Margin − Deg 16 pF 100 pF 500 pF 1000 pF 16 pF 100 pF 500 pF 1000 pF Phase Gain −20 −10 10 100 1000 10000 Frequency − kHz Gain − dB −80 −60 −40 −20 100 VCC = 5 V RL = 100 kΩ CL = 16 pF, 100 pF, 500 pF, 1000 pF Phase Margin − Deg 16 pF 100 pF 16 pF 100 pF 500 pF 500 pF 1000 pF 1000 pF Phase Gain GAIN AND PHASE MARGIN vs FREQUENCY Figure 4
LMV321-Q1 SINGLE, LMV358-Q1 DUAL, LMV324-Q1 QUAD LOW-VOLTAGE RAIL-TO-RAIL OUTPUT OPERATIONAL AMPLIFIERS SLOS415E − JUNE 2003 − REVISED APRIL 2008
8 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
POST OFFICE BOX 1443 • HOUSTON, TEXAS 77251−1443 TYPICAL CHARACTERISTICS 100 1000 10000 STABILITY vs CAPACITIVE LOAD Figure 9 Output Voltage − V Capacitive Load − nF VCC = ±2.5 V RL = 1 MΩ AV = 10 VO = 100 mVPP +VI −2.5 V RL +2.5 V VO CL LMV3xx (25% Overshoot) 134 kΩ 1.21 MΩ 0.500 0.600 0.700 0.800 0.900 1.000 1.100 1.200 1.300 1.400 1.500 PSLEW NSLEW − Supply Voltage − V Slew Rate − V/ SLEW RATE vs SUPPLY VOLTAGE Figure 10 LMV3xx RL = 100 kΩ µs VCC Gain 100 200 300 400 500 600 700 012345 Figure 11 SUPPLY CURRENT vs SUPPLY VOLTAGE − QUAD AMPLIFIER VCC − Supply Voltage − V Supply Current − Aµ TA = 85°C TA = 25°C TA = −40°C Figure 12 Input Current − nA INPUT CURRENT vs TEMPERATURE −60 −50 −40 −30 −20 −10 −40 −30 −20 −10 0 10 20 30 40 50 60 70 80 LMV3xx TA − °C VCC = 5 V VI = VCC/2
LMV321-Q1 SINGLE, LMV358-Q1 DUAL, LMV324-Q1 QUAD LOW-VOLTAGE RAIL-TO-RAIL OUTPUT OPERATIONAL AMPLIFIERS SLOS415E − JUNE 2003 − REVISED APRIL 2008
10 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
POST OFFICE BOX 1443 • HOUSTON, TEXAS 77251−1443 TYPICAL CHARACTERISTICS Figure 17 120 150 180 210 240 270 300 −40 −30−20−10 0 10 20 30 40 50 60 70 80 90 SHORT-CIRCUIT CURRENT vs TEMPERATURE Sinking Current − mA TA − °C LMV3xx VCC = 5 V LMV3xx VCC = 2.7 V SHORT-CIRCUIT CURRENT vs TEMPERATURE TA − °C Figure 18 Sourcing Current − mA 100 120 −40 −30 −20−10 0 10 20 30 40 50 60 70 80 90 LMV3xx VCC = 5 V LMV3xx V CC = 2.7 V 100 1K 10K 100K 1M Figure 19 −kSVR vs FREQUENCY Frequency − Hz VCC = −5 V RL = 10 kΩ SVR− dB LMV3xx 100 1K 10K 100K 1M Figure 20 +kSVR vs FREQUENCY Frequency − Hz VCC = 5 V RL = 10 kΩ +k SVR− dB LMV3xx
LMV321-Q1 SINGLE, LMV358-Q1 DUAL, LMV324-Q1 QUAD LOW-VOLTAGE RAIL-TO-RAIL OUTPUT OPERATIONAL AMPLIFIERS SLOS415E − JUNE 2003 − REVISED APRIL 2008
12 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
POST OFFICE BOX 1443 • HOUSTON, TEXAS 77251−1443 TYPICAL CHARACTERISTICS OPEN-LOOP OUTPUT IMPEDANCE vs FREQUENCY Figure 25 100 110 1 1000 2000 3000 4000 LMV3xx VCC = 5 V Impedance − Frequency − kHz Ω LMV3xx V CC = 2.7 V CROSSTALK REJECTION vs FREQUENCY Figure 26 100 110 120 130 140 150 100 1K 10K 100K Crosstalk Rejection − dB Frequency − Hz VCC = 5 V RL = 5 kΩ AV = 1 VO = 3 VPP
LMV321-Q1 SINGLE, LMV358-Q1 DUAL, LMV324-Q1 QUAD LOW-VOLTAGE RAIL-TO-RAIL OUTPUT OPERATIONAL AMPLIFIERS SLOS415E − JUNE 2003 − REVISED APRIL 2008 13POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 POST OFFICE BOX 1443 • HOUSTON, TEXAS 77251−1443 TYPICAL CHARACTERISTICS Figure 27
1 V/Div
1 µs/Div LMV3xx Input VCC = ±2.5 V RL = 2 kΩ T = 25°C 1 µs/Div Figure 28 NONINVERTING LARGE-SIGNAL PULSE RESPONSE VCC = ±2.5 V RL = 2 kΩ TA = 85°C 1 µs/Div VCC = ±2.5 V RL = 2 kΩ TA = −40°C
LMV321-Q1 SINGLE, LMV358-Q1 DUAL, LMV324-Q1 QUAD LOW-VOLTAGE RAIL-TO-RAIL OUTPUT OPERATIONAL AMPLIFIERS SLOS415E − JUNE 2003 − REVISED APRIL 2008
14 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
POST OFFICE BOX 1443 • HOUSTON, TEXAS 77251−1443 TYPICAL CHARACTERISTICS LMV3xx Input Figure 30 50 mV/Div NONINVERTING SMALL-SIGNAL PULSE RESPONSE 1 µs/Div VCC = ±2.5 V RL = 2 kΩ TA = 25°C Figure 31 NONINVERTING SMALL-SIGNAL PULSE RESPONSE 1 µs/Div 50 mV/Div LMV3xx Input VCC = ±2.5 V RL = 2 kΩ TA = 85°C LMV3xx Input Figure 32 NONINVERTING SMALL-SIGNAL PULSE RESPONSE 1 µs/Div 50 mV/Div VCC = ±2.5 V RL = 2 kΩ TA = −40°C
LMV321-Q1 SINGLE, LMV358-Q1 DUAL, LMV324-Q1 QUAD LOW-VOLTAGE RAIL-TO-RAIL OUTPUT OPERATIONAL AMPLIFIERS SLOS415E − JUNE 2003 − REVISED APRIL 2008 15POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 POST OFFICE BOX 1443 • HOUSTON, TEXAS 77251−1443 TYPICAL CHARACTERISTICS Figure 33 1 µs/Div LMV3xx Input VCC = ±2.5 V RL = 2 kΩ TA = 25°C LMV3xx Input INVERTING LARGE-SIGNAL PULSE RESPONSE 1 µs/Div Figure 34 VCC = ±2.5 V RL = 2 kΩ TA = 85°C 1 µs/Div VCC = ±2.5 V RL = 2 kΩ TA = −40°C INVERTING LARGE-SIGNAL PULSE RESPONSE LMV3xx Input
LMV321-Q1 SINGLE, LMV358-Q1 DUAL, LMV324-Q1 QUAD LOW-VOLTAGE RAIL-TO-RAIL OUTPUT OPERATIONAL AMPLIFIERS SLOS415E − JUNE 2003 − REVISED APRIL 2008
16 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
POST OFFICE BOX 1443 • HOUSTON, TEXAS 77251−1443 TYPICAL CHARACTERISTICS LMV3xx Input Figure 36 1 µs/Div 50 mV/Div INVERTING SMALL-SIGNAL PULSE RESPONSE VCC = ±2.5 V RL = 2 kΩ TA = 25°C LMV3xx Input Figure 37 1 µs/Div 50 mV/Div INVERTING SMALL-SIGNAL PULSE RESPONSE VCC = ±2.5 V RL = 2 kΩ TA = 85°C INVERTING SMALL-SIGNAL PULSE RESPONSE 1 µs/Div 50 mV/Div VCC = ±2.5 V RL = 2 kΩ TA = −40°C Figure 38 LMV3xx Input
LMV321-Q1 SINGLE, LMV358-Q1 DUAL, LMV324-Q1 QUAD LOW-VOLTAGE RAIL-TO-RAIL OUTPUT OPERATIONAL AMPLIFIERS SLOS415E − JUNE 2003 − REVISED APRIL 2008 17POST OFFICE BOX 655303 • DALLAS, TEXAS 75265 POST OFFICE BOX 1443 • HOUSTON, TEXAS 77251−1443 TYPICAL CHARACTERISTICS Input Current Noise − pA/ Hz Figure 39 0.00 0.20 0.40 0.60 0.80
10 Hz 100 Hz 1 kHz 10 kHz
VCC = 2.7 V INPUT CURRENT NOISE vs FREQUENCY Figure 40 0.00 0.05 0.10 0.15 0.20 0.25 0.30 0.35 0.40 0.45 0.50 Input Current Noise − pA/ Frequency Hz VCC = 5 V INPUT VOLTAGE NOISE vs FREQUENCY Figure 41 100 120 140 160 180 200 VCC = 2.7 V VCC = 5 V Input Voltage Noise − nV/ Hz
LMV321-Q1 SINGLE, LMV358-Q1 DUAL, LMV324-Q1 QUAD LOW-VOLTAGE RAIL-TO-RAIL OUTPUT OPERATIONAL AMPLIFIERS SLOS415E − JUNE 2003 − REVISED APRIL 2008
18 POST OFFICE BOX 655303 • DALLAS, TEXAS 75265
POST OFFICE BOX 1443 • HOUSTON, TEXAS 77251−1443 TYPICAL CHARACTERISTICS 0.001 0.010 0.100 1.000 10.000 10 100 1K 10K 100K Figure 42 Frequency − Hz THD + N vs FREQUENCY LMV3xx VCC = 2.7 V RL = 10 kΩ AV = 1 VO = 1 VPP THD − % Figure 43 THD + N vs FREQUENCY Frequency − Hz 0.001 0.010 0.100 1.000 10.000 10 100 1K 10K 100K LMV3xx THD − % VCC = 2.7 V RL = 10 kΩ AV = 10 VO = 1 VPP 0.001 0.010 0.100 1.000 10.000 10 100 1K 10K 100K Figure 44 Frequency − Hz THD + N vs FREQUENCY LMV3xx VCC = 5 V RL = 10 kΩ AV = 1 VO = 1 VPP THD − % Figure 45 0.001 0.010 0.100 1.000 10.000 10 100 1K 10K 100K THD + N vs FREQUENCY Frequency − Hz THD − % LMV3xx VCC = 5 V RL = 10 kΩ AV = 10 VO = 2.5 VPP
www.ti.com 20-Oct-2011 Addendum-Page 1 PACKAGING INFORMATION Orderable Device Status (1) Package Type Package Drawing Pins Package Qty Eco Plan (2) Lead/ Ball Finish MSL Peak Temp (3) Samples (Requires Login) LMV321IDBVRQ1 ACTIVE SOT-23 DBV 5 3000 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LMV321QDBVRQ1 ACTIVE SOT-23 DBV 5 3000 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LMV324IDRG4Q1 ACTIVE SOIC D 14 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LMV324IDRQ1 ACTIVE SOIC D 14 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LMV324IPWRG4Q1 ACTIVE TSSOP PW 14 2000 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LMV324IPWRQ1 ACTIVE TSSOP PW 14 2000 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LMV324QDQ1 OBSOLETE SOIC D 14 TBD Call TI Call TI LMV324QDRG4Q1 ACTIVE SOIC D 14 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LMV324QDRQ1 ACTIVE SOIC D 14 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LMV324QPWRG4Q1 ACTIVE TSSOP PW 14 2000 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LMV324QPWRQ1 ACTIVE TSSOP PW 14 2000 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LMV358IDRG4Q1 ACTIVE SOIC D 8 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LMV358IDRQ1 ACTIVE SOIC D 8 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LMV358IPWRG4Q1 ACTIVE TSSOP PW 8 2000 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LMV358IPWRQ1 ACTIVE TSSOP PW 8 2000 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LMV358QDQ1 OBSOLETE SOIC D 8 TBD Call TI Call TI LMV358QDRG4Q1 ACTIVE SOIC D 8 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LMV358QDRQ1 ACTIVE SOIC D 8 2500 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM
www.ti.com 20-Oct-2011 Addendum-Page 2 Orderable Device Status (1) Package Type Package Drawing Pins Package Qty Eco Plan (2) Lead/ Ball Finish MSL Peak Temp (3) Samples (Requires Login) LMV358QPWQ1 OBSOLETE TSSOP PW 8 TBD Call TI Call TI LMV358QPWRG4Q1 ACTIVE TSSOP PW 8 2000 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM LMV358QPWRQ1 ACTIVE TSSOP PW 8 2000 Green (RoHS & no Sb/Br) CU NIPDAU Level-1-260C-UNLIM (1) The marketing status values are defined as follows: ACTIVE: Product device recommended for new designs. LIFEBUY: TI has announced that the device will be discontinued, and a lifetime-buy period is in effect. NRND: Not recommended for new designs. Device is in production to support existing customers, but TI does not recommend using this part in a new design. PREVIEW: Device has been announced but is not in production. Samples may or may not be available. OBSOLETE: TI has discontinued the production of the device. (2) Eco Plan - The planned eco-friendly classification: Pb-Free (RoHS), Pb-Free (RoHS Exempt), or Green (RoHS & no Sb/Br) - please check http://www.ti.com/productcontent for the latest availability information and additional product content details. TBD: The Pb-Free/Green conversion plan has not been defined. Pb-Free (RoHS): TI's terms "Lead-Free" or "Pb-Free" mean semiconductor products that are compatible with the current RoHS requirements for all 6 substances, including the requirement that lead not exceed 0.1% by weight in homogeneous materials. Where designed to be soldered at high temperatures, TI Pb-Free products are suitable for use in specified lead-free processes. Pb-Free (RoHS Exempt): This component has a RoHS exemption for either 1) lead-based flip-chip solder bumps used between the die and package, or 2) lead-based die adhesive used between the die and leadframe. The component is otherwise considered Pb-Free (RoHS compatible) as defined above. Green (RoHS & no Sb/Br): TI defines "Green" to mean Pb-Free (RoHS compatible), and free of Bromine (Br) and Antimony (Sb) based flame retardants (Br or Sb do not exceed 0.1% by weight in homogeneous material) (3) MSL, Peak Temp. -- The Moisture Sensitivity Level rating according to the JEDEC industry standard classifications, and peak solder temperature. Important Information and Disclaimer:The information provided on this page represents TI's knowledge and belief as of the date that it is provided. TI bases its knowledge and belief on information provided by third parties, and makes no representation or warranty as to the accuracy of such information. Efforts are underway to better integrate information from third parties. TI has taken and continues to take reasonable steps to provide representative and accurate information but may not have conducted destructive testing or chemical analysis on incoming materials and chemicals. TI and TI suppliers consider certain information to be proprietary, and thus CAS numbers and other limited information may not be available for release. In no event shall TI's liability arising out of such information exceed the total purchase price of the TI part(s) at issue in this document sold by TI to Customer on an annual basis. OTHER QUALIFIED VERSIONS OF LMV321-Q1, LMV324-Q1, LMV358-Q1 :
- Catalog: LMV321 , LMV324 , LMV358 NOTE: Qualified Version Definitions:
www.ti.com 20-Oct-2011 Addendum-Page 3
- Catalog - TI's standard catalog product
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Buyeracknowledgesand agreesthatitissolelyresponsibleforcompliancewithalllegal,regulatoryand safety-relatedrequirements concerningitsproducts,and any use ofTIcomponents initsapplications,notwithstandingany applications-relatedinformationorsupport thatmay be providedby TI.Buyerrepresentsand agreesthatithas allthenecessaryexpertisetocreateand implementsafeguardswhich anticipatedangerousconsequencesoffailures,monitorfailuresand theirconsequences,lessenthelikelihoodoffailuresthatmightcause harm and takeappropriateremedialactions.BuyerwillfullyindemnifyTIand itsrepresentativesagainstany damages arisingoutoftheuse ofany TIcomponents insafety-criticalapplications. Insome cases,TIcomponents may be promotedspecificallytofacilitatesafety-relatedapplications.Withsuch components,TI’s goalisto helpenablecustomerstodesignand createtheirown end-productsolutionsthatmeet applicablefunctionalsafetystandardsand requirements.Nonetheless,such components aresubjecttotheseterms. No TIcomponents areauthorizedforuse inFDA ClassIII(orsimilarlife-criticalmedicalequipment)unlessauthorizedofficersoftheparties have executeda specialagreementspecificallygoverningsuch use. OnlythoseTIcomponents whichTIhas specificallydesignatedas militarygradeor“enhanced plastic”aredesignedand intendedforuse in military/aerospaceapplicationsorenvironments.Buyeracknowledgesand agreesthatany militaryoraerospaceuse ofTIcomponents whichhave not been so designatedissolelyattheBuyer's risk,and thatBuyerissolelyresponsibleforcompliancewithalllegaland regulatoryrequirementsinconnectionwithsuch use. TIhas specificallydesignatedcertaincomponents whichmeet ISO/TS16949 requirements,mainlyforautomotiveuse.Components which have notbeen so designatedareneitherdesignednorintendedforautomotiveuse;and TIwillnotbe responsibleforany failureofsuch components tomeet such requirements. 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